Long-lasting modulation of synaptic plasticity in rat hippocampus after early-life complex febrile seizures

Robbert G E Notenboom1, Geert M J Ramakers, Amer Kamal

  • 1Rudolf Magnus Institute of Neuroscience, Department of Neuroscience & Pharmacology, University Medical Center Utrecht, Utrecht, The Netherlands. r.g.e.notenboom@lumc.nl

Insights

Febrile seizures in young rats can alter hippocampal plasticity, enhancing long-term potentiation and mossy fiber sprouting. However, these changes did not impact spatial learning and memory in adulthood.

Area of Science:

  • Neuroscience
  • Developmental Neuroscience
  • Epilepsy Research

Background:

  • Febrile seizures can lead to cognitive impairments in a subset of children.
  • Studies suggest prolonged febrile seizures in early life may cause lasting hippocampal damage and cognitive deficits.
  • Conflicting data exists regarding network plasticity and the specific cognitive deficits following febrile seizures.

Purpose of the Study:

  • To investigate long-term effects of experimental febrile seizures on hippocampal plasticity in adult rats.
  • To assess activity-dependent synaptic plasticity (LTP/LTD), spatial learning/memory, and mossy fiber plasticity.
  • To correlate these changes with potential cognitive deficits.

Main Methods:

  • Electrophysiological recordings (field excitatory potentials) in hippocampal slices to measure long-term potentiation (LTP) and long-term depression (LTD).
  • Morris water maze task to evaluate spatial learning and memory.
  • Timm histochemistry to quantify mossy fiber terminal sprouting in the CA3 and dentate gyrus.

Main Results:

  • Adult rats with a history of experimental febrile seizures exhibited enhanced CA1 LTP and reduced LTD.
  • Spatial learning and memory, assessed via the Morris water maze, remained normal.
  • Significant mossy fiber collateral sprouting into the dentate gyrus was observed in adulthood.

Conclusions:

  • Experimental febrile seizures induce long-term functional (enhanced LTP) and structural (mossy fiber sprouting) alterations in the hippocampus.
  • These hippocampal plasticity changes occur without overt deficits in spatial learning and memory.
  • The observed plasticity alterations may contribute to increased seizure susceptibility but not necessarily cognitive impairment.

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